A fan blows air across a battery package, which includes battery modules in a holder. The holder includes fins, configured such that air contact areas of battery modules at an upstream part are smaller than those at a downstream part. The fins at the upstream part may be longer than those at the downstream part. Alternatively, fins at a first side of the battery modules may be longest at the upstream part. fins at a second side may be shortest at the upstream part. An air channel between the fins and the battery modules narrows from the upstream part to the downstream part. The fins at the upstream part may be closer to corresponding battery modules than those at the downstream part. Each fin may define a substantially rectangular cross-section. Alternatively, each fin may have an inclined surface on an upstream side and/or a declined surface on a downstream side.
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1. A heat exchanger structure for a battery package, the battery package comprising battery modules disposed in a holder, the heat exchanger comprising a fan to blow air from an upstream part to a downstream part of the battery package;
wherein the holder comprises a plurality of fins, configured such that an air contact area of the battery modules at the upstream part is smaller than an air contact area of the battery modules at the downstream part;
wherein each fin defines a length in a direction substantially perpendicular to a direction from the upstream part to the downstream part, wherein the lengths of the fins at the upstream part are longer than the lengths of the fins at the downstream part; and
wherein the fins are disposed at a first side of the battery modules, the structure further comprising additional fins at a second side of the battery modules, wherein each additional fin defines a length in the direction substantially perpendicular to the direction from the upstream part to the downstream part, wherein the lengths of the additional fins at the upstream part are shorter than the lengths of the additional fins at the downstream part.
2. The heat exchanger structure according to
wherein the fins are disposed on the intermediate holder parts and/or the holder cover parts.
3. The heat exchanger structure according to
wherein the lengths of the additional fins are shorter than a distance from a second wall of the holder from which the additional fins protrude, to a near point of corresponding battery modules,
and wherein an air channel defined between the fins, the additional fins, and the battery modules becomes gradually narrower from the upstream part to the downstream part.
4. The heat exchanger structure of
5. The heat exchanger structure of
6. The heat exchanger structure of
7. The heat exchanger structure of
8. The heat exchanger structure of
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The present application is based on, and claims priority to, Korean Application Serial Number 10-2006-0118106, filed on Nov. 28, 2006, the disclosure of which is hereby incorporated by reference herein in its entirety.
The present invention relates to a heat exchanger structure for battery modules.
In general, a battery package is used in electric or hybrid-electric vehicles. A battery package includes several battery modules, disposed at regular intervals in a holder, and electrically and physically connected with each other.
The temperature of the battery modules increases during use. The modules are therefore cooled to prevent degradation of performance. In addition, since the battery modules do not smoothly operate at very low temperatures, such as in the winter, there is a need to heat them.
A fan is typically provided at either one or both sides of the battery package, and is used both for cooling and heating. However, the battery modules located nearest the fan are easily cooled or heated, whereas those located farther downstream are only slightly cooled or heated, because they exchange heat with the air that has already exchanged heat with those upstream.
A battery package includes battery modules disposed in a holder. A fan blows air from an upstream part to a downstream part of the battery package. The holder includes fins, configured such that an air contact area of the battery modules at the upstream part is smaller than an air contact area of the battery modules at the downstream part. The holder includes holder cover parts at outer surfaces of the battery package, and one or more intermediate holder parts disposed between the holder cover parts; the fins are disposed on the intermediate holder parts and/or the holder cover parts.
The lengths of the fins at the upstream part may be longer than the lengths of the fins at the downstream part.
Alternatively, a first set of fins, at a first side of the battery modules, may be longer at the upstream part than at the downstream part. A second set of fins, at a second side of the battery modules, may be shorter at the upstream part than at the downstream part. The lengths of the first set of fins are shorter than a distance from a first wall of the holder from which the first set of fins protrudes, to a far point of corresponding battery modules, but longer than a distance from the first wall to a near point of the corresponding battery modules. The second set of fins may be shorter than a distance from a second wall of the holder from which the second set of fins protrudes, to a near point of the corresponding battery modules. An air channel defined between the fins and the battery modules becomes gradually narrower from the upstream part to the downstream part.
The fins at the upstream part may be closer to corresponding battery modules than fins at the downstream part.
Each fin may define a substantially rectangular cross-section. Alternatively, each fin may have an inclined surface on an upstream side and/or a declined surface on a downstream side.
For a better understanding of the nature and objects of the present invention, reference should be made to the following detailed description with the accompanying drawings, in which:
Referring to
In
As shown in
Referring to
Moving toward the air outlet O, the fins 7 are gradually shorter, so that the region X of the battery module 1 that contacts the air increases, so as to thereby carry out more efficient heat exchange therewith. Accordingly, the air exchanges a similar amount of heat with all of the battery modules 1.
In the embodiment illustrated in
In such a structure, as shown in
That is, the air introduced into the air inlet I strikes the fin 7, and flows over the fin 7 along the back face thereof into a space defined between the battery module 1 and the fin 7. Moving toward the air outlet O, the amount of air flowing into the space increases to widen the contact area with the battery modules 1, thereby forming conditions suitable for heat exchange. Accordingly, due to the airflow from the air inlet I to the air outlet O, the battery modules 1 disposed along the airflow path are cooled or heated to the same level as a whole.
The fins 7 described above with reference to
In
In
In
In
The shape of each fin 7 can be selected by a person of ordinary skill in the art based on the teachings herein, considering the cooling or heating characteristics of the battery modules 1 and the workability of the holder 3 of the battery package 5 to which the invention is adapted in practice.
As set forth above, according to the present invention, air is properly controlled so as to uniformly cool or heat the battery modules to thereby secure smooth and stable operation of the battery package.
While the invention has been described in conjunction with various embodiments, the invention is not limited thereto, and accordingly, many alternatives, modifications and variations will be apparent to persons skilled in the art in light of the foregoing detailed description. The foregoing description is intended to embrace all such alternatives and variations that fall within the spirit and broad scope of the appended claims.
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Apr 04 2007 | SHIMOYAMA, YOSHIRO | Hyundai Motor Company | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 019213 | /0704 | |
Apr 04 2007 | SHIMOYAMA, YOSHIRO | HYUNDAI MOTOR JAPAN R&D CENTER INC | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 019213 | /0704 | |
Apr 04 2007 | SHIMOYAMA, YOSHIRO | Kia Motors Corporation | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 019213 | /0704 | |
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Apr 10 2007 | Hyundai Motor Japan R&D Center | (assignment on the face of the patent) | / | |||
Apr 10 2007 | Kia Motors Corporation | (assignment on the face of the patent) | / |
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